Shuangyi Zhao, Jinrong Zhao, Saif M. H. Qaid, Dehai Liang, Kang An, Wensi Cai, Qingkai Qian, Zhigang Zang
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引用次数: 0
摘要
平板式 X 射线闪烁体具有较高的空间分辨率和较低的辐射剂量率,是医疗诊断、安全检查和无损检测领域高效成像应用的理想之选。为了促进 X 射线成像技术的发展,探索具有减少光散射、高光产率和均匀辐射发光的透明闪烁体是非常有意义的。在此,我们设计并制备了一种新型无铅 (C12H28N)2Cu2I4 金属卤化物,它具有高发光效率和白光发射,这得益于双自俘获激子机制,不仅能匹配基于半导体的传感器的响应,还能提高光产率并降低物体的暴露剂量。此外,面积达 20.25 平方厘米的透明柔性闪烁体显示出卓越的闪烁性能,包括 19.8 lp mm-1 的高空间分辨率和 28.39 nGyair s-1 的超低检测限,分别比医学成像的典型值高 4 倍和低 194 倍。这项工作不仅为探索有前景的宽带发射替代品提供了一条新途径,也为开发灵活的 X 射线成像技术提供了一个新机会。
White emission metal halides for flexible and transparent x-ray scintillators
Flat-panel x-ray scintillators with a high spatial resolution at a low radiation dose rate are desirable for efficient imaging applications in medical diagnostics, security inspection, and nondestructive inspection. To promote the progress of x-ray imaging technologies, it is of great interest to explore transparent scintillators with reduced light scattering, high light yields, and uniform radioluminescence. Herein, we design and prepare a novel lead-free (C12H28N)2Cu2I4 metal halide featuring a high luminescent efficiency and white emission benefiting from the double self-trapped exciton mechanism, which enable to not only match the response of semiconductor-based sensors but also enhance light yields and decrease exposed doses to objects. Furthermore, transparent, and flexible scintillators with large areas of 20.25 cm2 demonstrate an outstanding scintillation performance including a high spatial resolution of 19.8 lp mm−1 and an ultralow detection limit of 28.39 nGyair s−1, which are ∼4 times higher and 194 times lower than typical values for medical imaging, respectively. This work provides not only a new route to explore promising alternatives with broadband emission but also a novel opportunity to develop flexible x-ray imaging technology.
期刊介绍:
Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles:
Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community.
Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.